Microfluidic PDMS face mask
20220071320 · 2022-03-10
Assignee
Inventors
- LUNG-JIEH YANG (NEW TAIPEI CITY, TW)
- Vivek Jabaraj (ANDAMAN & NICOBAR ISLANDS, IN)
- Reshmi Waikhom (Imphal, IN)
Cpc classification
B01D43/00
PERFORMING OPERATIONS; TRANSPORTING
B01D45/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Provided is a microfluidic PDMS face mask, including a face mask body having a plurality of bores mounted on a surface thereof, a microfluidic block array including a plurality of microfluidic blocks being arranged in arrays and received in the bores, each of the microfluidic block includes a microfluidic module for allowing a fluid to flow therethrough, thereby capturing microparticles, and a strap having one end attached to a left side of the face mask body and the other end attached to a right side of the face mask body for adhering the face mask body to the face of a user.
Claims
1. A microfluidic PDMS face mask, comprising: a face mask body having a plurality of bores mounted on a surface thereof; a microfluidic block array including a plurality of microfluidic blocks being arranged in arrays and received in the bores, each of the microfluidic block includes a microfluidic module for allowing a fluid to flow therethrough, thereby capturing microparticles; and a strap having one end attached to a left side of the face mask body and the other end attached to a right side of the face mask body for adhering the face mask body to a face of a user.
2. The microfluidic PDMS face mask according to claim 1, wherein the microfluidic modules of the microfluidic blocks are constructed in a hollow and symmetric dual-channel curved structure.
3. The microfluidic PDMS face mask according to claim 1, wherein the microfluidic module of the microfluidic block includes an inlet, a microfluidic channel, a plurality of cilia, two first exits, and a second exit, and wherein the microfluidic module is provided with two passageways with a tilt angle of 50-60 degrees being respectively arranged between the inlet and one of the first exits for increasing fluidic vortex to slow down a flow speed of the fluid flowing through the microfluidic channel and prolonging a period of the fluid flowing in the microfluidic channel, thereby increasing the possibility of capturing the microparticles.
4. The microfluidic PDMS face mask according to claim 1, wherein the microfluidic PDMS face mask is manufactured with silicone in an integral manner.
5. The microfluidic PDMS face mask according to claim 1, wherein the microfluidic module includes a plurality of cilia being perpendicular to and integrated with an inner wall for capturing the microparticles.
6. The microfluidic PDMS face mask according to claim 5, wherein the microfluidic module further includes a plurality of compartments between each cilium of the cilia for generating local vortex to slow down a flow speed of the fluid.
7. The microfluidic PDMS face mask according to claim 1, wherein the strap is made of silicone, cotton cloth, or unwoven fabric.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Next, the invention will be described in detail with reference to the accompanying drawings.
[0014]
[0015]
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[0017]
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[0020]
[0021]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0022] Next, in order to facilitate the understanding of the invention, a preferred embodiment is given below with reference to the accompanying drawings to illustrate the content and effect of the invention. Nonetheless, it is to be noted that the invention can be accomplished in a variety of manners which are to be covered and defined by the appended claims and their equivalents. Also, it is to be noted same elements are designated with same reference numerals throughout the specification.
[0023] Firstly, as shown in
[0024] The microfluidic modules 30 of the microfluidic blocks 20 are secured within the bores 60 to form a microfluidic block array 70.
[0025] The microfluidic module 30 is a hollow and symmetric dual-channel curved structure having an inlet 31, two symmetric microfluidic channels 32, a plurality of cilia 33, two first exits 34, and a second exit 35 located at the confluence of an upper flow channel and a lower flow channel. Two passageways with a tilt angle of 50-60 degrees are respectively arranged between the inlet 31 and one of the first exits 34 for increasing the fluidic vortex to slow down the flow speed of the fluid flowing through the microfluidic channel 32 and prolonging the period of the fluid flowing in the microfluidic channel 32. In this way, the possibility of capturing the microparticles is elevated.
[0026] The microfluidic face mask of the invention is manufactured by silicone in an integral manner, thereby saving the laboring and cost of the manufacturing process.
[0027] Preferably, the filtration ratio of the microfluidic module 30 for 5-μm microparticles is 70%.
[0028] The microfluidic module 30 includes a plurality of cilia 33, which are perpendicular to and integrated with the inner wall of the microfluidic channel 32 to capture and filter out microparticles.
[0029] Furthermore, small compartments are created between each cilium 33 for generating local vortex to slow down the flow speed and facilitate the capture of microparticles. The cilia 33 act as a flexible and flat artificial trachea capable of filtering out aerosol particles before they contact the trachea cilia of the human body, thereby protecting the human body from being infected with virus. The filtration ratio of the microfluidic module 30 for 5-μm aerosol particles is 70%.
[0030] The strap 50 may be made of a material with comfortability, such as silicone, cotton cloth, and unwoven fabric.
[0031] The length and width of the microfluidic PDMS face mask of the invention are analogous to the commercially available face mask, and the thickness of the microfluidic PDMS face mask of the invention is 3 mm. The 3-mm thickness of the microfluidic PDMS face mask of the invention may be identical to the distance between the inlet 31 and the first exit 34.
[0032] Please refer to
TABLE-US-00001 TABLE 1 Microfluidic at 34 channel Particle Size at 32 at 33 (exit) at 35 3-mm long 5 μm 4% 8% 30% 58% and 80-μm 20 μm 0% 0% 98% 2% thick
[0033] In conclusion, the features and functions of the invention are enumerated as follows:
[0034] 1. The COMSOL Multiphysics simulation experiment result shows that 98% of the large particles (20-μm particles) are directly discharged from the microfluidic channel, while 70% of the small particles (5-μm particles) are captured by the cilia of the microfluidic channel.
[0035] 2. The low flow resistance of the microfluidic channel of invention allows the user to breathe smoothly, such that the user would be glad to persistently wear the PDMS face mask of the invention.
[0036] 3. The face mask of the invention uses silicone (PDMS is an organosilicon). Hence, the face mask of the invention possesses great biocompatibility and water-tightness.
[0037] 4. Silicon is known to have high flexibility and high adhereability. Thus, the user can wear the face mask of the invention stably.
[0038] 5. The PDMS face mask of the invention is transparent and beautiful. Thus, westerners would be glad to adopt the PDMS face mask of the invention.
[0039] 6. The silicone, preferably PDMS, has a temperature tolerance of 200° C. More advantageously, the PDMS face mask of the invention can be disinfected by simply heating the PDMS face mask and can be used repeatedly.
[0040] 7. After the COVID-19 pandemic is over, the technique of the invention can be applied to deal with the PM 2.5 pollutions.
[0041] 8. The PDMS face mask of the invention can be molded by injection molding of liquid silicone rubber.
[0042] 9. The bionic cilia microstructure on the surface of the mask acts as a flexible and flat artificial trachea for helping the trachea cilia of the human body to filter out aerosols with virus beforehand.
[0043] Lastly, please refer to
[0044] After the open-up microfluidic block 20 is attained, a “close-down” process must be applied to seal off the microfluidic block. In a preferred embodiment of the invention, as the PDMS face mask employs PDMS as the silicone material, we can apply the PDMS plasma bonding technique which is a well-known skill in the microelectromechanical Systems (MEMS) process to bond and seal off the microfluidic block, as shown in the central image of
[0045] Finally, each microfluidic block is embedded into a bore of the face mask, thereby forming the microfluidic block array 70, as shown in the rightmost image of
[0046] It is to be noted that the microfluidic PDMS face mask of the invention adopts silicone as the material of the face mask for its optical transparency. Moreover, silicone is characterized as an inert, non-toxic, thermally resistive, non-flammable material, and is a widely-used organic polymer. Thus far silicone has been employed in microfluidic system in MEMS, caulk, contact lens, and biocompatible stuffing.
[0047] In sum, compared to the prior art of
[0048] 1. The inventive microfluidic PDMS face mask can filter out 70% or more of the aerosols in the air, so as to safeguard the health of human body.
[0049] 2. The low flow resistance of the microfluidic channel of invention allows the user to breathe smoothly, such that the user would be glad to persistently wear the PDMS face mask of the invention.
[0050] 3. The face mask of the invention uses silicone. Hence, the face mask of the invention possesses great biocompatibility and water-tightness.
[0051] 4. Silicon is known to have high flexibility and high adhereability. Thus, the user can wear the face mask of the invention stably.
[0052] 5. The PDMS face mask of the invention is transparent and beautiful. Thus, westerners would be glad to adopt the PDMS face mask of the invention.
[0053] 6. The PDMS face mask of the invention can be molded by injection molding of liquid silicone rubber, thereby saving manufacturing cost.
[0054] 8. The PDMS face mask of the invention can be disinfected by simply heating the PDMS face mask and can be used repeatedly.
[0055] 9. After the COVID-19 pandemic is over, the technique of the invention can be applied to deal with the PM 2.5 pollutions.
[0056] Hence, the invention can achieve the effect that is unforeseeable by the prior art.
[0057] The above descriptions only disclose a preferred embodiment of the invention. However, it is to be understood that the invention should not be limited to the accurate form or the preferred embodiments disclosed herein. The preferred embodiments stated above cannot be taken to limit the scope of the invention. The invention should encompass various modifications and alterations made based on the foregoing embodiments. An artisan having ordinary skill in the art can understand the way to embody the foregoing embodiment, and the equivalent modifications which are made based on the claims are still within the scope of the invention.